西马鲁肽的口服吸收:药代动力学模型和分子动力学模拟。

In silico pharmacology Pub Date : 2025-07-16 eCollection Date: 2025-01-01 DOI:10.1007/s40203-025-00393-7
Palak Nitin Agarwal, Ian S Haworth
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引用次数: 0

摘要

Semaglutide是一种GLP-1受体激动剂,作为Rybelsus®口服给药。在结构上,semaglutide是一种脂质修饰的α -螺旋肽,其吸收主要发生在胃中,可能取决于其构象性质。因此,重要的是要包括三维结构参数,反映构象的药代动力学模型的semaglutide。我们使用药代动力学模型来模拟半马鲁肽的吸收,并确定可能控制这一过程的分子和生理参数。需要5.8 Å的分子半径和10.25 Å的胃孔半径来重现观察到的10 mg口服西马鲁肽的胃吸收和血浆浓度与时间的关系。为了确定这个分子半径是否可以达到构象,进行了分子动力学模拟。这些模拟表明,半聚脲的连接链-脂质链包裹在肽α -螺旋上,并产生一个平均分子半径(包括肽、连接链和脂质)与药代动力学模型中要求的范围相同的螺旋结构。因此,这种连接体-脂质包裹可能是西马鲁肽被吸收到体循环中所必需的。这项工作显示了使用分子模型参数化药代动力学模型的潜力,其中构象变异性可能会影响药代动力学。图片摘要:补充资料:在线版本包含补充资料,网址为10.1007/s40203-025-00393-7。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Oral absorption of semaglutide: pharmacokinetic modeling and molecular dynamics simulations.

Semaglutide is a GLP-1 receptor agonist that is formulated for oral administration as Rybelsus®. Structurally, semaglutide is a lipid-modified alpha-helical peptide and its absorption, which occurs mainly from the stomach, may be dependent on its conformational properties. Therefore, it is important to include three-dimensional structural parameters that reflect conformation in a pharmacokinetic model of semaglutide. We used pharmacokinetic modeling to simulate the absorption of semaglutide and identify molecular and physiological parameters that may govern this process. A molecular radius of 5.8 Å and a gastric pore radius of 10.25 Å were required to reproduce the observed stomach absorption and plasma concentration vs. time profile of oral semaglutide at a dose of 10 mg. To determine if this molecular radius can be achieved conformationally, molecular dynamics simulations were performed. These simulations showed that the linker-lipid chain of semaglutide wraps around the peptide alpha-helix and produces a helical structure with an average molecular radius (including the peptide, linker and lipid) that falls in the same range as that required in the pharmacokinetic model. Therefore, this linker-lipid wrapping may be necessary for semaglutide to be absorbed into the systemic circulation. This work shows the potential for using molecular modeling in parameterization of pharmacokinetic models for molecules in which conformational variability may influence the pharmacokinetics.

Graphical abstract:

Supplementary information: The online version contains supplementary material available at 10.1007/s40203-025-00393-7.

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